| Literature DB >> 36081159 |
Chiung-Hsing Chen1, Yi-Chen Wu1, Jia-Xiang Zhang1, Ying-Hsiu Chen2.
Abstract
Typhoons in summer and cold snaps during winter in Taiwan often cause huge aquaculture losses. Simultaneously, the lack of human resources is a problem. Therefore, we used wireless transmission technology with various sensors to transmit the temperature, pH value, dissolved oxygen, water level, and life expectancy of the sensor in the fish farm to the server. The integrated data are transmitted to mobile devices through the Internet of Things, enabling administrators to monitor the water quality in a fish farm through mobile devices. Because the current pH sensors cannot be submerged in the liquid for a long time for measurements, human resources and time are required to take the instrument to each fish farm for testing at a fixed time. Therefore, a robotic arm was developed to complete automatic measurement and maintenance actions. We designed this arm with a programmable logic controller, a single chip combined with a wireless transmission module, and an embedded system. This system is divided into control, measurement, server, and mobility. The intelligent measurement equipment designed in this study can work 24 h per day, which effectively reduces the losses caused by personnel, material resources, and data errors.Entities:
Keywords: Internet of Things; aquaculture; life expectancy; robotic arm; wireless transmission
Mesh:
Year: 2022 PMID: 36081159 PMCID: PMC9460614 DOI: 10.3390/s22176700
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.847
Figure 1Fish farms in Taiwan.
Figure 2System architecture.
Figure 3Simulation diagram of intelligent fish farm management system.
Figure 4Intelligent measurement arm and its flow chart.
Figure 5The flow chart of integrated architecture.
Figure 6The Pt100 module.
Figure 7The relationship between temperature and saturated dissolved oxygen (mg/L).
Figure 8DO sensor.
Figure 9The traditional floating ball water level switch.
Figure 10The module of the water overflow sensor.
Figure 11pH sensor.
Figure 12The pH module.
Figure 13LoRa transmission module.
Figure 14Characteristic curve offset graph.
The pH value of the standard solution at each temperature.
| Temperature (°C) | pH 4.00 | pH 7.00 | pH 10.00 |
|---|---|---|---|
| 10 | 3.99 | 7.06 | 10.16 |
| 25 | 4 | 7 | 10 |
| 40 | 4.03 | 6.98 | 9.88 |
| 60 | 4.08 | 6.98 | 9.79 |
Figure 15The alert e-mail.
Figure 16Human–machine interface of intelligent fish farm measurement system.